During a flight, the steel plate attack wing–fuselage of an aircraft is subjected to cyclical thermalstresscausedbyflightaltitudevariationthatcouldcompromisethefunctionalityoftheplate. Thus, it is compulsory after a sequence of flights to evaluate the state of plate health. In this work, we propose a new dynamic model on the basis of the physical transmission of heat by conduction governedbyasecond-orderparabolicpartialdifferentialequationwithsuitableinitialandboundary conditionstoanalyzeandforecastthermalstressesintheplateofaP64OSCARBairplane. Developing thismodelintheCOMSOLMulti-Physics R environment,afinite-elementtechniquewasappliedto achieve the thermal-stress map on the plate. The achieved results, equivalent to those obtained by a campaign of infrared thermographic experiment measurements (not yet used in the aeronautical industry),highlighttheevolutionofthethermalloadofthesteelplateattackwing–fuselage,adding evidence of possible incoming fatigue phenomena to identify in advance if the steel plate must bereplaced.

Second-Order Parabolic Equation to Model, Analyze, and Forecast Thermal-Stress Distribution in Aircraft Plate Attack Wing–Fuselage / Angiulli, Giovanni; Calcagno, Salvatore; De Carlo, Domenico; Laganà, Filippo; Versaci, Mario. - In: MATHEMATICS. - ISSN 2227-7390. - 8:6(2020), pp. 1-21. [10.3390/math8010006]

Second-Order Parabolic Equation to Model, Analyze, and Forecast Thermal-Stress Distribution in Aircraft Plate Attack Wing–Fuselage

Giovanni Angiulli;Salvatore Calcagno;Mario Versaci
2020-01-01

Abstract

During a flight, the steel plate attack wing–fuselage of an aircraft is subjected to cyclical thermalstresscausedbyflightaltitudevariationthatcouldcompromisethefunctionalityoftheplate. Thus, it is compulsory after a sequence of flights to evaluate the state of plate health. In this work, we propose a new dynamic model on the basis of the physical transmission of heat by conduction governedbyasecond-orderparabolicpartialdifferentialequationwithsuitableinitialandboundary conditionstoanalyzeandforecastthermalstressesintheplateofaP64OSCARBairplane. Developing thismodelintheCOMSOLMulti-Physics R environment,afinite-elementtechniquewasappliedto achieve the thermal-stress map on the plate. The achieved results, equivalent to those obtained by a campaign of infrared thermographic experiment measurements (not yet used in the aeronautical industry),highlighttheevolutionofthethermalloadofthesteelplateattackwing–fuselage,adding evidence of possible incoming fatigue phenomena to identify in advance if the steel plate must bereplaced.
2020
nondestructive testing and evaluation
second-order parabolic problems
special steels
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.12318/51853
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